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134 CHAPTER 8 ' creased an amount equal to the head of the pump, 20 ft of water. Pr, the minimum pressure, equals 29 plus 20, or 49 ft of water, gage, or S3 ft of water, absolute. The required volume by Equation 4 is ,,y. s> -----3--5-.-4----- =* 4,,4,,0 gaL, 34 _34__ 6 83 ~ 103.3 Example 6: Determine the size of expansion tank required when it is connected as shown in D, Fig. 17. Solution: The expansion tank is located at the top of the system with the result that the height of the system has no effect on the required minimum pressure, P/ . However, the tank is located far enough from the pump so that friction loss in the piping between the pump and the tank must be considered in determining the pressure effect of pump operation on system pressures. Assume that die tank is located at a point such that the friction loss between the tank connection to the system and the suction of the pump is 8 ft, with the resistance in the return riser to the boiler still considered negligible. The pressure in the expansion tank remains the same whether the pump runs or not. Therefore, since 8 ft of friction loss exists between the expansion tank and the pump suction at the top of the return riser, the pressure in the expansion tank must be increased by that amount to maintain a positive air venting procure at that point. Pf, the minimum presure in the tank should be the sum of 4 ft for positive venting pressure and 8 ft for pump effect, or 12 ft water, gage, which is 46 ft of water, absolute. Since the pump is located between the expansion tank connection ana the boiler, P, , the maximum pressure in the tank, must be less thn the operating pressure of the relief valve by an amount equal to the effect of pump operation on the boiler pressure. In this case, the effect of the pump is reduced by the friction loss be tween the expansion tank and the boiler. The head of the pump, 20 ft, less friction as dtscuaed, 8 ft, is equal to 12 ft. The height of the system is 23 ft. The sum of the pump head and the building height effect is 37 ft. P., then, is 693 less 37, which is 323 ft of water, gage, or 663 ft of water, ahsolute. Other factors remain as discussed in the other examples. Substituting in Equation 4 the required ex- 35.4 V, 34 34 157 gal In Example* 4, A and 6, the calculated rim of the expansion tank has been indicated. It is customary practice to select a standard taT>k cim not than that calculated. The two following important factors in tank rising have not been illustrated in the Examples 4 to 6: 1. Use of compressed air to increase the amount of air tn the tank. This factor affects the value of P. by increasing it above atmospheric presure. The use of compressed air to charge the expansion tank reduces the required tank volume. 2. Effect of a design maximum temperature higher than tit F. The etfect of design temperatures above 212 as used by some de signers is given in the discussion of A, Fig. 17. It is possible to obtain proper operation of the expansion tank without aHHing the pressure required to maintain liquid water at temperatures in excess of 212 F. Two things are necessary on this Kaaia of de sign: (o) the pressure increase in the system as the temperature increases from 40 F to 212 F and to the final design temperature must be sufficient to keep the pressure above that corresponding to the temperature of the water in Older to prevent boiling and (6) the operating personnel for the system must be instructed regarding the proper pressure for various system temperatures in order that proper pressure control of the system may be main tained. An automatic fill valve cannot be ued to maintain the minimum pressure for such a system. In small systems where the volume of water is email and where the pressures due to pump and static heads are low, expansion tanks are small and no critical problems are en countered. However, for large systems the axe of the ex 1962 Guide And Data Book pansion tank and the problems of pressure control can be come critical. The following means of reducing expansion tank rise and establishing satisfactory pressure control may be investigated in addition to the methods diseased under A to , Fig. 17: 1. Compressed air, if available, can be admitted to the expa&. son to the desired pressure. 2. The head of the pump may be reduced by the use of larger pipe " or greater design temperature drop. 3. The boiler may be constructed for presures higher 30 prig. 4. The boiler may be used with a steam-to-water heat exchanger to heat the water circulated. The point of connection of the expansion tank to the system should be studied carefully to guard against the possibility of isolating the tank from a hot boiler or any part of the system by normal operation of automatic, check, or Tnaypud yalveS. BOILER ROOM PIPING The arrangement of equipment, its capacity, and the piping arrangement for its connection will vary, depending upon the size and characteristics of the systems which H serves. Most of the principles involved in these arrangements have been discussed. Fig. 18 shows the piping and specialties considered necessary for the most basic system. The ASME Low Pressure Heating Boiler Code requires that provision must be made for draining a dosed expansion tank without emptying the system. A valve is commonly induded in the expansion piping to the tank but it must not dose a con nection to the safety relief valve. Fig. 19 shows a more elaborate multizone, system. Most systems will fall between these extremes as the engineer fits the design to the require ments of the installation. One device in boiler piping which facilitates elimination of air before it can enter the mains is the dip tube. Air will separate from the water in a heating system at a point where the velocity and pressure are the lowest and where the tem perature is the highest. Although the pressure at the boiler is generally high, it is a logical pla^a to perform the separa tion. Fig. 18 shows the use of a dip tube. This extension of the outlet pipe forms a dead space at the highest and hottest part of the boiler. The air will tend to separate /ram the Hot Water Heating Systems 135 -.ter in this space. The air can be conducted to the expan^na fnk by a connection from the tank to the highest point lithe boiler (see Fig. 18). The connecting pipe should be direct as posable and be pitched upward continuously ** the fynk if the expansion tnnk is not connected directly to the boiler, an automatic air vent valve should be installed t the high point of the boiler, instead. In general, the manufacturer's recommendation on the number of outlets .to be used for a particular boiler for a given application should be followed. This applies also to retum connections. The prevention of thermal shock through proper use of retum connections should be considered in piping arjaagement. Where more than one pump are used for cir culation, the discharge of the pumps should be joined be fore bring discharged into the boiler. A check valve should be installed in the discharge of each pump, unless another method of preventing backflow through the pump circuit js provided. Where temperatures higher than normal are maintained in the boiler, the connection of the return to the boiler should follow the manufacturer's recommendations for such service. Where.a multiple boiler installation is used, provisions sbould be made to prevent the bypassing of water through a boiler which is not being maintained at control tempera ture. In some cases this provision takes the form of auto matic.control valves interlocked with the boiler temperature centred to be open only when the temperature in the par ticular boiler is being maintained at operating conditions. In other cases, manual valves are installed in the boiler returns and opened only when the burner switch which places the firing device at the command of the boiler temperature control is in the ON position. Weighted check valves, or flow check valves, should be in stalled in the supply piping from the boiler to prevent grav ity circulation during periods when the circulating pumps are not operating. If the piping is arranged with separate sup plies to individual zones, a weighted check valve should be in stalled in the supply piping to each zone. THE USE OF STEAM WITH HOT WATER HEATING SYSTEMS The use of. a steam boiler or district steam with a con verter (heat exchanger) has many advantages for tall build ings. The piping for the steam used in this type of a system should follow the principles outlined in Chapter 6, Steam Heating Systems. In tall buildings the system can be zoned vertically as shown in Fig. 20, that is, with a given number of floors per zone and a converter for each zone. This type of design makes the limitation of maximum pressure in the system possible. With a converter-type system, the volume of water in the boiler is not a part of the volume of water causing thermal expansion in the system. Since the boiler in a hot water system may hold 30 to 50 percent of the total water volume of the system, the reduction in the size of the expansion tank and the problems involved therewith are of major importance. The use of steam in extended-surface coils for heating air will often be more desirable in a system where steam is available. This type of installation will result in less ex pensive cods, and simplified coil controls. - TEMPERATURE CONTROL Methods of temperature control for hot water beating systems, tnelmting zone controls, are covered in Chapter 13 of the 1961 Guide And Data Book. SYSTEM ADJUSTMENT Two common methods of determining the effects of ca pacity adjustment are: the measurement of space tempera- fig. 19.... Boiler Piping for Multiple-Zone Multiple-Purpose Heating System